Vulkan is the sole, user-signed-off backend (V10 landed) and step 1
already removed ImGui/Studio/DevTools. This step deletes the GL
rendering backend itself: every Gpu/Gl/** implementation, the Wb
ManagedGL*/GLHelpers/GLSLShader/GLStateScope/RenderStateCache/
BindlessSupport family, Shader/ShaderProgramConstruction/SamplerCache,
RenderBootstrap, and RenderFrameGlStateController.
GameWindow.cs's Run()/CreateGraphics()/CreateBackbufferReader()/
OnLoad() collapse to their Vulkan-only arm; GameWindowGraphics loses
its OpenGlGameWindowGraphics subclass. RuntimeOptions.RenderBackend and
RenderBackendKind (incl. the Gl member of GpuBackendKind) are gone —
there is nothing left to select between. The five world-draw dual-arm
renderers (WbDrawDispatcher, EnvCellRenderer, TerrainModernRenderer,
ParticleRenderer, SkyRenderer) and the composition roots
(WorldRenderComposition, HostInputCameraComposition,
LivePresentationComposition, FrameRootComposition) collapse to their
RHI-only arm. GL-only diagnostic properties with a live external reader
(DynamicBufferCount and friends) simplify to a documented `=> 0`/no-op
rather than disappearing, since the reader is out of this commit's
scope.
A few GL-flavored mechanisms turned out to be backend-neutral once
isolated: GlConstructionCleanupLedger is renamed
ResourceConstructionCleanupLedger (exception-chain walking has nothing
to do with GL), and GlfwNativePlatformProbe moved out of the otherwise
GL-only GraphicalCapabilityRecord.cs into
GraphicalWindowBackendSelection.cs before the rest of that file was
deleted.
Test files with no surviving subject are deleted outright
(GraphicalCapabilityRequirementsTests, ShaderProgramConstructionTests,
PortalDepthShaderParityTests, TextureCacheBindlessTests,
TextRendererFailureSafetyTests, ClipFrameUploadTests, every
Gpu/Gl/*Tests, GlTextureOwnershipTests, RenderFrameGlStateControllerTests);
others get their dead GL-only members trimmed while their live
assertions stay (ClipFrameLayoutTests' MeshClipSsboBinding check now
reads GpuBindingModel.StorageClipRegions, the same binding index under
its new backend-neutral name; GpuResourceRetirementTransactionTests
drops its OpenGLGraphicsDevice-subclassing test double and the two GL
queue tests it existed for). EnvCellRendererTests' construction helper
now builds a real ObjectMeshManager via VulkanMeshPipelineDevice
instead of passing null through a null-forgiving operator, since the
RHI constructor never tolerated a null mesh manager and the old GL
constructor (which did) is gone.
Deferred to the next two steps, deliberately not touched here: the
Silk.NET.OpenGL/.Extensions.ARB package references, IMeshPipelineDevice.Gl
(WbMeshAdapter's GL? threading stays in place), Chorizite.Core's stale
csproj comment (the package itself is still load-bearing —
TextureFormat and friends are used well beyond the deleted
ManagedGLUniformBuffer), and the CI/gate scripts.
Build: `dotnet build AcDream.slnx -c Release` — 0 warnings, 0 errors.
Tests: full-solution `dotnet test` green across every project
(App.Tests 3937/3940 + 3 skips, Core.Tests 3296/3298 + 2 skips, all
others 100%); the 2 App.Tests names that flake under full-suite
parallel execution (#250-family, documented pre-existing) pass in
isolation.
Co-Authored-By: Claude Fable 5 <noreply@anthropic.com>
The three world renderers' submission arms, both pass executors, and the
composition that reaches them. This is the unit three predecessors stopped at.
What it produces. ACDREAM_RENDER_BACKEND=vulkan on the offline scene renders
terrain with blended textures and road overlays, the water edge, static world
meshes, procedural scenery, and the complete retained UI - the same frame the GL
pixel gate captures, from the same camera, minus the sky. artifacts/v6j-vk2.
The shape, and why it is not V4c's. Section 5.5.6 chose option (B) after NVIDIA
rendered the V4c binary 10/10 where AMD's GL stack did not: GL keeps its raw
world path through to V10 as a documented fork confined to the submission seam,
and the RHI world path ships on Vulkan. So V4c's and V4d-2's content returns as a
SECOND arm rather than a replacement. The GL arm issues the same GL statements in
the same order against the same objects; the encoder arm lives in three .Rhi.cs
partials and is entered by one branch per submission site.
Three differences from V4c, each because the tree moved under it. There is no
binding-9 texture table - V4t put the slot on the device and Vulkan binds set 2,
so the arm that used to intern bindless handles simply has nothing to do. The
pipelines carry the device's sample count rather than 1, because Vulkan requires
rasterizationSamples to match the pass and alpha-to-coverage is a no-op at one
sample. And no renderer opens a pass.
That last one is structural, not tidiness. Under MSAA the frame's one backbuffer
pass resolves into the swapchain image and stores DONT_CARE into the multisampled
scratch, so a second pass declaring Load would load undefined contents; the
backend also permits one open pass per frame. VulkanWorldScenePhase therefore
opens the pass, publishes the encoder on VulkanWorldPassScope for exactly the
span of the inner WorldSceneRenderer, and every renderer borrows it.
Three sections are frame-global on GL and cannot be on Vulkan: the SceneLighting
UBO, the per-cell clip regions, and the terrain clip block. GL binds each to a
global binding point and every consumer inherits it. Vulkan binds a descriptor
set per draw, and a renderer's own binds are what select the scope those sections
must land in - so their writers PUBLISH into WorldFrameSections and each renderer
binds them inside the pass, after its own binds. SceneLightingUboBinding's
per-flight-slot buffer pool disappears with it: a ring allocation is already
distinct memory that lives until the frame retires, which is the property the
pool existed to provide.
Both pass executors became backend-neutral rather than gaining twins. Everything
they do is delegation to a renderer except four concerns - the clip-frame
publication, the doorway scissor, gl_ClipDistance enablement, and retail's
interior depth clear - so those four move behind IWorldPassSurface and retail's
ordering, which is what these classes are actually for, is written once. The GL
implementation issues the statements the executors used to issue inline.
Clip distances are no-ops on the Vulkan arm, and that is safe rather than a
divergence: Vulkan activates every element the shader declares, and all three
world vertex shaders already write 1.0 into every slot past the active count.
The interior depth clear becomes vkCmdClearAttachments, reached through the scope
so the pinned contract stays frozen and the backend-only verb stays in the
backend. The hook for it was already committed at V6i-3 with a cref to a type
that did not exist yet; it exists now.
The collision-wireframe DebugLineRenderer is composed as null on the Vulkan arm.
DrawAndPublish flushes it INSIDE the world phase and it opens its own pass, which
the one-pass rule forbids. The toggle is DevTools-only and DevTools is not
composed there, so nothing is lost - composing it would throw on the first
wireframe frame rather than silently misdraw.
Two seams widened rather than invented. GameWindowGraphics answers whether the
backend has a world-pass seam, because the three composition phases that need it
already borrow that handle and "does this backend work that way" is what the type
exists to answer. And MeshSourceReady replaces the anyVao != 0 gate with the same
question in backend-neutral form - V6i-3 published HasStores for exactly this -
so the predicate evaluates identically on GL.
What is NOT here, and is expected. Sky and weather are still raw GL (V4f), so the
Vulkan frame's sky is the atmosphere fog clear. Particles (V4e), the paperdoll and
appraisal viewports and the portal depth mask (V4g) likewise. The executors
already accepted all of them as absent.
Gates. Release build green. App tests 4,112 passed / 3 skipped, the unchanged
baseline; complete Release suite 9,175 / 5. Strict GL offline pixel gate against
847f14ae: 5.50e-05, 31 differing pixels of 563,200, inside the documented 9-31
band and 18x under the threshold. Characterised rather than accepted, because 31
is the band's top: cross-commit pairs measured 21, 29 and 31 while same-commit
controls measured 12 and 20, and maximumChannelDelta is 46-52 in every comparison
INCLUDING the pure controls - so the few large-delta pixels are a property of the
capture, and a cross-commit pair at 21 against a same-commit pair at 20 is not
what a systematic shift looks like. GL connected repeat gate at 3 runs: 3/3
RENDERED on the desktop witness and 3/3 on the client capture. One offline Vulkan
run with VK_LAYER_KHRONOS_validation proven inserted by the loader: zero
validation errors, zero warnings, a captured world frame, and a graceful close.
Coverage gap, stated rather than assumed. The offline scene is a fixed outdoor
view, so EnvCellRenderer's Vulkan arm draws nothing in it - dungeon interiors are
half of this slice and are unproven by anything automated, exactly as they were
for V4c. The deferred-alpha path and the doorway scissor are likewise untouched
by this scene. They join the accumulated user-gate debt in plan section 5.1.
No divergence-register row: no retail-facing behaviour changes.
Co-Authored-By: Claude Fable 5 <noreply@anthropic.com>
V4t moves the world texture stack off the raw 64-bit ARB_bindless_texture
handle and onto GpuTextureSlot. This first commit does terrain only, because
terrain is the one branch of that stack whose producer and consumer are a
single pair — TerrainAtlas and TerrainModernRenderer — so it can carry the
new device seam on its own pixel gate before the mesh/composite/particle
retype lands on top of it.
Why the device's table can now be reached, when §5.2 said it could not.
That paragraph's reason was the flush: GlGpuDevice drains its dirty table
runs inside FlushBeforeDraw, which only an encoder-recorded draw reaches,
so a raw-GL renderer would sample a stale table. §5.5.6 then closed the GL
re-land of V4c/V4d, which means the world renderers stay raw GL through to
V10 — so "wait for the encoder" stopped being a plan and became an
indefinite block on V4t, which the Vulkan world arm cannot be written
without. The resolution is the smallest one that keeps the seam honest: the
drain is factored out as GlGpuDevice.FlushTextureTable, and a raw-GL
renderer calls it and binds TextureTableGlName at binding 9 itself,
immediately before its own draw — the same shape its retired private
GlBindlessHandleTable had, against a table that is now the device's. Nothing
else of the backend is exposed, and both members are deleted with the raw-GL
world path.
Residency ownership deliberately does NOT move. RegisterWorldTextureHandle
interns an already-resident handle and owns only the table entry; the atlas
still creates, makes resident and destroys its own textures. That is what
separates it from RegisterTexture, which owns the residency it creates, and
it is why this slice can retype the data model without also porting GL
texture creation onto IGpuTexture.
TerrainAtlas.GetBindlessHandles becomes GetTextureSlots(GlGpuDevice).
Registration is idempotent by handle, so the per-draw call is two dictionary
lookups — the cadence GetOrAdd already had. It is conditional on the handle
having changed because SetAnisotropic makes both textures non-resident and
re-acquires them: without that check a quality-preset change would strand a
slot holding a non-resident handle, so the superseded entry is retired in
the same step through the device's retirement queue.
Ordering is unaffected. Terrain's two slots travel as loose uniforms
(uTextureIndexA/B) and enter no sort and no bucket key, so a different slot
NUMBER changes nothing about what is drawn or in what order — only which
table index resolves to the same handle.
Gates. GL offline pixel gate vs cb2a70b8: 3.02e-05 (17 of 563,200 pixels),
exactly a same-commit control value and inside the documented 15-23 px /
<=4.1e-05 band. tools/run-repeat-connected-gate.ps1 -Runs 3: 3/3 RENDERED on
both the desktop witness and the client capture. One Vulkan composition-host
run with VK_LAYER_KHRONOS_validation proven inserted by the loader: zero
errors, zero warnings, empty validation log, converged ownership ledger. App
tests 4,075 / 3 skips (#250's zero-allocation test reran green singly).
One connected run of an earlier 3-run attempt died in the render loop with
"OpenGL returned unexpected fence wait status NoError (0x0)" from
GpuFrameFlightController.RetireFence. It did not reproduce in the following
three runs at this tree nor in three interleaved runs at cb2a70b8, and this
diff creates, deletes and waits on no fence. Filed as #251 rather than
attributed.
Co-Authored-By: Claude Fable 5 <noreply@anthropic.com>
terrain_modern.frag declared `uniform float uTexTiling[36]` - the per-layer
tiling factors retail passes to TexMerge::CopyAndTile / TexMerge::Merge, one per
terrain atlas layer. Vulkan GLSL has no default uniform block, so a loose array
is unspellable there, and 144 bytes of payload cannot ride the pinned 96-byte
push-constant block. GpuBindingModel reserved UniformTerrainTiling (binding 3)
for exactly this at slice V4d. The array now lives in that block.
The ELEMENT TYPE is deliberately unchanged. std140 pads every array element out
to 16 bytes, so the block is 576 bytes rather than 144, and packing four values
per vec4 would be tighter - but it would also rewrite the accessor and every use
site, and this commit's whole value is that its pixel gate measures the move to
a uniform buffer and nothing else. `uTexTiling[int(layer)]` reads exactly as it
did.
That padding is the hazard the change introduces, so it is pinned twice. The CPU
writer walks TerrainTextureTilingTable.UniformElementStrideBytes and zero-fills
the dead words rather than blitting 36 packed floats, and a new test asserts the
stride is 16, the block is 576, and the two are consistent with LayerCapacity. A
tightly-packed writer would not crash or even look obviously wrong: the shader
would read layer 0's factor for layers 0-3, layer 4's for 4-7, and in a scene
where most layers tile at 1 the error stays invisible until a layer that does
not appears. Nothing else in the suite could see that.
The buffer is allocated once in the constructor, through the same
TrackedGlResource + ResourceCleanupGroup rollback path every other terrain
buffer uses, written on the first bound draw - preserving the upload-once
property the linked program's uniform had for free - and released through the
dispose ledger. It is REBOUND every draw rather than once: GL's uniform-buffer
binding points are global and shared with SceneLighting at 1 and the sky's
params at 4, so a renderer running between two terrain draws can take binding 3
out from under us. Self-contained render state, per the standing rule.
Gates. Release build clean. App tests 4,073 passed / 3 skipped - the baseline
4,072 plus the new layout test. Offline pixel gate against 5e13b45f: 21 differing
pixels of 563,200 compared (fraction 3.73e-05), inside the documented 15-23
pixel band and ~27x under the 0.001 threshold. This gate is a real test of the
layout rather than a formality: terrain blending, road overlays and the water
edge are most of the captured frame, and every one of those samples goes through
terrainTiling(), so a stride mismatch would have shown as a wholesale retexture
rather than as noise. The gate run's client log has zero exceptions and an empty
stderr.
Manifest regenerated in the same commit. terrain_modern's remaining Vulkan error
moved from `'uTexTiling' : undeclared identifier` to the frag's direct
`sampler2DArray(...)` construction, which is the same dialect migration V6e ran
for mesh_modern and which lands next. The pair count is unchanged at 7/9.
No divergence-register row: the tiling values, their source and their use are
unchanged, and no retail-facing behaviour moves.
Co-Authored-By: Claude Fable 5 <noreply@anthropic.com>
terrain_modern.vert combined two loose mat4 uniforms per vertex:
gl_Position = uProjection * uView * vec4(terrainPos, 1.0);
Vulkan GLSL cannot express that. There is no default uniform block, so a loose
`uniform mat4` is unspellable however it is written, and the two matrices are
128 bytes against a pinned 96-byte push-constant block (and against Vulkan's
guaranteed 128-byte ceiling). GpuPushConstants already carries exactly one
uViewProjection, which is the shape every other ported shader reads. So the
product moves to the CPU and the shader reads the single matrix.
The transform is identical. System.Numerics uses row-vector convention and
Shader.SetMatrix4 uploads untransposed, so GLSL reads each uploaded matrix as
its transpose. The old expression evaluated Proj^T * View^T; the new one
evaluates (View*Proj)^T, and those are the same matrix. The renderer already had
that product in hand - `viewProjection` at line 422, computed for the visibility
pass - so nothing new is multiplied. It is multiplied once per frame on the CPU
instead of once per vertex on the GPU.
That last sentence is the whole reason this is its own commit. Moving a float
product from GPU to CPU is a real numeric change: different hardware, possibly
different fused-multiply-add behaviour, certainly a different rounding order.
The plan's V4d row requires its pixel effect be attributable alone rather than
folded into a plumbing change, and terrain fills most of the offline gate's
scene, so this is the strongest measurement that gate can make.
Gates. Release build clean. App tests 4,072 passed / 3 skipped, matching the
baseline exactly. Offline pixel gate against 7faaaa34: 22 differing pixels of
563,200 compared (fraction 3.91e-05, maximumChannelDelta 52). A same-commit
control captured immediately afterwards: 15 pixels (2.66e-05, maximumChannelDelta
46). Both sit inside the documented 15-23 pixel noise band and ~26x under the
0.001 threshold, and the change and its own control are drawn from the same
distribution - which is what "no systematic shift" looks like at this
instrument's resolution. The gate run's client log has zero exceptions and an
empty stderr.
The shader manifest is regenerated in the same commit, as its freshness test
requires. terrain_modern.vert now compiles to SPIR-V for the first time; the
pair stays vulkanReady:false and emits no .spv because terrain_modern.frag still
declares `uniform float uTexTiling[36]`, which is the other half of this
shader's port and lands next as the UniformTerrainTiling buffer that
GpuBindingModel already reserves binding 3 for. Per-pair the count is unchanged
at 7/9; per-stage it is 15/18.
No divergence-register row: the transform is identical and no retail-facing
behaviour changes.
Co-Authored-By: Claude Fable 5 <noreply@anthropic.com>
TerrainModernRenderer records through IGpuPassEncoder instead of calling GL
directly. V4d-1 already converged its two matrix uniforms; this is the plumbing.
What moved. The per-frame indirect command array became an
IGpuFrame.AllocateRing slice, which retires the three-deep per-frame-slot
indirect buffer pool outright. That pool existed so a second terrain draw within
one frame - a retail outside view can issue several - could not overwrite an
earlier draw's still-pending commands; the frame ring gives that structurally,
because every allocation within a frame is distinct memory that lives until the
frame retires. DynamicIndirectBufferCount now reports 0, which is the truth
rather than a silent change.
The vertex and index arena became an IGpuBuffer pair. AddLandblock's two
BufferSubData calls are Upload, and EnsureCapacity's grow-and-copy is
IGpuBuffer.CopyTo, still device-side so resident landblock meshes never
round-trip through system memory. The global VAO is gone: the pipeline owns one
shaped by the vertex layout, and the encoder re-issues attribute pointers on
every BindVertexBuffer.
Locations 2-5 use GpuVertexFormat.UByte4UInt, added at c7f5f251 for exactly
this. They are uvec4 in the shader and carry terrain-type, road and
split-direction codes; UByte4Normalized would have delivered [0,1] floats to an
integer input, which GL leaves undefined - garbage, not an approximation.
uTextureIndexA/uTextureIndexB became GpuPushConstants.TextureIndexA/B. Slice V2b
named those uniforms to match the pinned block, so this was the rename it was
meant to be. uTexTiling moved from a loose uniform float[36] into a std140 block
at GpuBindingModel.UniformTerrainTiling: at 144 bytes of payload it cannot ride
in the 96-byte push-constant block, and no RHI verb sets a uniform array. std140
pads each element to 16 bytes so the block is 576, but the element type is
unchanged, so uTexTiling[int(layer)] reads exactly as before. It is a long-lived
uniform buffer uploaded on the first draw, preserving the upload-once property
the linked-program uniform had.
The imperative Enable(CullFace)/CullFace(Back)/FrontFace(Ccw) triple and the
inherited depth state are baked into one pipeline. Depth compare is GL_LESS, not
the contract's LessOrEqual default: the world frame runs under GL_LESS
(RenderFrameGlStateController.RestoreFrameDefaults) and terrain never called
glDepthFunc, so it inherited it. Baking LessOrEqual would change which of two
coplanar retail surfaces wins - visible exactly where terrain meets roads and
building footings, which is what the shader's zFightTerrainAdjust nudge is
about. Blend off, alpha-to-coverage off, colour write on and depth write on come
from the same frame default, each checked against what terrain observes rather
than assumed. GL_MULTISAMPLE is untouched by pipeline binds, so MSAA does not
leak away from the still-raw-GL sky and particles.
Deliberately unmoved. The terrain clip UBO at binding 2 and the SceneLighting
UBO at binding 1 stay raw global binds - ClipFrame owns one and the viewport and
portal renderers read the other, and both are raw GL until V4h (campaign doc
5.3). The interim GlBindlessHandleTable stays, now held as an IGpuBuffer and
bound through the encoder at binding 9; retiring it is V4t. glMemoryBarrier
stays a raw call: it has no RHI verb and was already a no-op against
client-side uploads. The trailing FrontFace(CW)/Disable(CullFace) restore stays
so sky and particles see what they see today. TerrainAtlas is untouched - it
belongs to V4t. Terrain has no GPU timer to port; its diagnostics use a CPU
stopwatch.
Three consequences worth naming rather than leaving to be discovered.
The convenience constructor narrowed from public to internal, because IGpuDevice
and ICurrentGpuFrameSource are internal RHI types and a public constructor
cannot name them. The class stays public, no other member changed visibility,
and every caller was already in this assembly - EnvCellRenderer's constructor is
internal for the same reason. That is the only visibility change in the diff.
Terrain no longer needs a Shader composed for it, since its pipeline compiles
terrain_modern from the same sources with the same shared preamble. That removes
the terrain-shader composition step, its publication, its lifetime field and the
WorldRenderCompositionPoint member. Two data-driven test cases went with it: one
InlineData row naming "terrain shader" as a publication to fail, and one case
from the theory that enumerates every composition point. App tests therefore
read 3,844 rather than the 3,846 baseline. No invariant lost coverage - both
theories still exercise every remaining resource and point; the two cases were
parameterisations over a step that no longer exists.
The renderer's own GpuRetirementLedger is gone. Every resource it held retryable
releases for is an IGpuBuffer or IGpuPipeline now, and their Dispose already
routes the physical free through the device's retirement queue. Only the
fallback clip UBO is still a raw GL name, so it is all the dispose ledger
carries. The slot allocator's separate retryable publication path is untouched.
Also dropped: a dead BindlessSupport field, assigned and never read.
Gates. Release build green with TreatWarningsAsErrors. App tests 3,844 passed /
3 skipped over four consecutive runs. Offline pixel gate against 0cb10597: 20
differing pixels of 563,200 (fraction 3.55e-05, 28x under the threshold),
against a same-commit control at this commit of 26 - the change differs from its
parent by LESS than the capture differs from itself, which is as close to proof
of no systematic shift as this gate can give. Compared against all three V4d-1
captures the numbers are 20, 32 and 34, against a same-commit V4d-1 spread of 8,
27 and 28: the same distribution. The gate run's client log has zero exceptions
and an empty stderr.
Coverage gap, stated rather than assumed: the offline gate's scene is a fixed
outdoor view. It exercises terrain heavily - terrain blending, road overlays and
the water edge are most of the frame - but it does not cover terrain seen
through a doorway clip region, which is the one terrain path with its own
binding (the clip UBO at binding 2). That wants a user visual check.
No divergence-register row: this slice changes no retail-facing behaviour.
Co-Authored-By: Claude Fable 5 <noreply@anthropic.com>
terrain_modern.vert took uView and uProjection as two mat4 uniforms and formed
`uProjection * uView` per vertex. GpuPushConstants carries one ViewProjection,
so terrain could not reach the pinned push-constant block until these became
one uniform. This does that change and nothing else.
The transform is unchanged. System.Numerics is row-vector and stores row-major;
uploaded untransposed, GLSL reads those bytes as column-major, which is the
transpose. So the CPU's camera.View * camera.Projection arrives in the shader as
(View*Proj)^T = Proj^T * View^T - exactly the uProjection * uView it replaces.
The product it now uses is the same one Draw already computed for the per-cell
visibility pass, so no new work is done either.
What genuinely changes is where the multiply happens: per-vertex on the GPU
before, once on the CPU now. Two float32 matrix products with different
association and rounding are not bit-identical, and terrain fills most of the
gate's frame, so this was split into its own commit to make that effect
attributable rather than buried in the V4d-2 plumbing diff.
It is not measurable. The gate run against c7f5f251 reported 32 differing
pixels of 563,200 (fraction 5.68e-05, 17.6x under the 0.001 threshold). Because
32 sits just above the plan's recorded 8-29 noise band, the difference was
characterised rather than accepted: three captures were taken at this commit and
compared every way.
cross-commit (c7f5f251 vs here): 32, 26, 26
same-commit (here vs here): 28, 27, 8
The distributions are the same distribution. Two cross-commit pairs (26, 26)
differ by LESS than two same-commit pairs (27, 28), and a systematic shift
cannot produce that - it would floor every cross-commit comparison above every
same-commit one. maximumChannelDelta is 48-49 in all six comparisons, including
the pure same-commit controls, so the few large-delta pixels are a property of
the capture, not of this change. The 32 was the high draw of a noise
distribution whose floor today spans roughly 8 to 32; a same-commit control
measured 17 at cb0182a0 earlier in the session, so the band drifted on its own,
with an unchanged binary, by more than this change moved anything.
Gates. Release build green with TreatWarningsAsErrors. App tests 3,846 passed /
3 skipped over two consecutive clean runs. A third run failed only
UiDatFontTests.InstanceMeasureWidth_ReusesGlyphTableWithoutAllocating, which is
the known issue #250 flake on an unchanged tree. Two files changed, CRLF and
UTF-8 preserved.
No divergence-register row: the transform is identical and no retail-facing
behaviour changes.
Co-Authored-By: Claude Fable 5 <noreply@anthropic.com>
This reverts ceec3bc4. Two independent reasons, either sufficient.
The rendering regression. The slice deleted TextRenderGlStateScope, which
saved GL_MULTISAMPLE and GL_SAMPLE_ALPHA_TO_COVERAGE on entry, disabled them
for the text pass, and restored them on exit (TextRenderGlStateScope.cs:111-112
and 153-154 at the parent commit). Its replacement bakes that state into the
text pipeline but nothing restores it, and GlGpuPassEncoder.Dispose does not
either. Every world renderer is still raw GL at this point in the campaign, so
from the first UI frame onward the world drew with multisampling disabled.
The offline pixel gate caught it: 1,791 of 563,200 compared pixels differed,
0.318% against a 0.001 threshold. The commit message attributed this to
wall-clock-driven ambient animation shifting phase, and committed through the
failure. That explanation does not survive its own control: capturing twice at
the reverted-to commit differs by 19 pixels and twice at the slice's own commit
by 8, while base-versus-head differs by 1,791 - a 224x gap that no shared-noise
source explains. An amplified difference image settles it visually: the changed
pixels are the silhouette edges of every tree, building and rock, with terrain
interiors, water and the entire UI untouched. That is the signature of losing
edge antialiasing, not of animated sprites.
This is the exact failure mode two existing memory notes already warn about -
a mid-frame renderer must set every GL state it uses rather than inherit it,
and issue #52's lesson that a rendering migration must audit per-pass GL state
before declaring itself done.
The scope. The brief was three small leaf renderers plus additive frame-
lifecycle wiring, roughly ten files. The commit changed 334 files with 3,665
insertions and 3,845 deletions, including 323 public-to-internal visibility
conversions across the App assembly, 55 test files, two retired conformance
tests, and a self-described temporary escape hatch for bridging raw-GL viewport
textures. Even without the regression, that is not separable into the part
worth keeping and the part worth dropping.
Reverting rather than patching because the good work here - the RHI frame
lifecycle wiring and a genuine render-state-cache staleness fix - is small
enough to redo cleanly against a tightened spec, while untangling it from 300+
files of unrelated churn is not.
Post-revert: Release build clean, App suite back to 3,843 passed / 3 skipped,
offline pixel gate passing at 19 differing pixels.
Co-Authored-By: Claude Fable 5 <noreply@anthropic.com>
TextRenderer, BitmapFont, DebugLineRenderer, and TextureCache's UI-texture
upload path (GetOrUploadRenderSurface/UploadRgba8) now issue every draw and
resource creation through the pinned IGpuDevice/IGpuFrame/IGpuPassEncoder
RHI contract instead of raw GL. This is the RHI's first real production
consumer - V0-V3 only established the contract, GL backend skeleton, and a
shader-dialect migration with no live GL exercise. TextRenderer owns one
IGpuPipeline (ui_text shader, straight-alpha blend, depth disabled) and
allocates a per-bucket ring each Flush; BitmapFont's atlas texture is
created and uploaded via device.CreateTexture/.Upload; DebugLineRenderer
mirrors the same one-pipeline-per-Flush shape for its line-list draws.
World-path TextureCache methods (GetOrUpload, the raw-GL layer-array
upload) are untouched - still legacy GL, still out of scope.
Frame lifecycle: GpuDeviceFrameLifetime (RenderFrameOrchestrator.cs) wraps
IGpuDevice.BeginFrame()/IGpuFrame.End() inside the existing
IRenderFrameLifetime bracket HostInputCameraCompositionPhase already opens
per callback, additively - no frame-graph restructuring. Ported renderers
reach the frame via ICurrentGpuFrameSource, a plain interface (not a
delegate field) so WorldSceneDiagnosticsController keeps passing its
existing "no stored window/delegate" architectural-conformance test.
Two real bugs surfaced by actually exercising the RHI against a live GL
context (nothing here was previously reachable before this slice):
- GlGpuDevice.BeginFrame() now resets the render-state cache every frame.
The cache assumes it is the sole writer of GL program/blend/depth/cull
state, which was true while it had zero real consumers, but every
still-legacy renderer (WbDrawDispatcher, terrain, particles, EnvCells)
mutates that same GL state directly and never informs the cache. Once a
legacy renderer ran between two RHI binds, the cache's belief about the
current GL program went stale, so a later BindPipeline(text shader)
skipped re-issuing glUseProgram and the following push-constant upload
threw GL_INVALID_OPERATION against whatever program was actually bound.
Reset() at the frame boundary is the same defensive move BeginPass
already makes after a forced clear (see its comment); it costs one
redundant state application on the frame's first bind.
- GL_MULTISAMPLE has no representation in the pinned contract. Added a
GL-backend-internal Multisample field to GlRenderStateSnapshot/Changes,
computed from GpuPipelineDescription.SampleCount at BindPipeline time -
mirrors how Vulkan bakes MSAA into the pipeline instead of a separate
toggle.
Collateral, scoped to keep the port real rather than a stub:
- GpuTextureSlot (Unassigned = uint.MaxValue, NOT 0) now flows through
every consumer of TextureCache.GetOrUploadRenderSurface/UploadRgba8 and
TextRenderer.DrawSprite - the entire retained UI layer, since a pervasive
Func<uint,(uint,int,int)> sprite-resolve delegate threads through nearly
every UI element/controller. Every prior `== 0` / `!= 0` "no texture"
check became `.IsAssigned` / `!.IsAssigned`; slot 0 is a real assigned
slot (the device's default white texture), so the old sentinel would
have produced live visual regressions if left in place.
- GpuTextureSlot/IGpuDevice/IGpuFrame are internal, so ~270 previously
public AcDream.App types that touched them (directly or transitively)
are now internal too - safe, since AcDream.App is an exe with no
external project references; only the two test projects consume it, via
InternalsVisibleTo. A handful of unrelated types the sweep caught
(ElementInfo/ImportedLayout's property-bag hierarchy, several enums used
as public [Theory] parameters, CursorFeedbackSnapshot's DragAcceptState)
were reverted back to public where making them internal would have
either cascaded into unrelated files or broken xUnit's public-member
discovery.
- ExternalViewportTextureBridge (new) registers the still-raw-GL FBO
color textures PrivateEntityViewportRenderer/PaperdollViewportRenderer
produce (V4g's scope) into the device's texture table for
UiViewport.TextureHandle, via a temporary
GlGpuDevice.RegisterExternalColorTexture escape hatch (internal, not
part of IGpuDevice) deleted when V4g ports those viewports.
- TextRenderGlStateScope.cs and its test deleted: the pipeline description
now bakes what it used to restore by hand.
- ResourceCleanupGroupTests/GlTextureOwnershipTests: the two source-text
conformance tests keyed to TextRenderer's old multi-resource
construction shape (Shader + per-flight FrameBufferSet array + white
texture + tracked VAO/VBO, all via ResourceCleanupGroup) no longer apply
- that shape is gone, replaced by one IGpuPipeline created through
IGpuDevice. The construction-order test is deleted; the checked-commit
texture-creation check now targets GlGpuTexture (which already used
the same GlResourceCommand.CreateName primitive before this slice).
Gates:
- dotnet build -c Release: 0 warnings, 0 errors (AcDream.App has
TreatWarningsAsErrors).
- dotnet test tests/AcDream.App.Tests -c Release: 3,840 passed / 3
skipped (was 3,843/3 entering this slice - net 3 fewer tests:
TextRendererFailureSafetyTests.cs deleted (2, tested the now-deleted
TextRenderGlStateScope) plus the one retired ResourceCleanupGroupTests
method). Full solution: 8,908 passed / 5 skipped across all nine test
projects.
- Offline pixel gate (tools/run-offline-pixel-gate.ps1, parent ec414d60
vs this commit): differing fraction 0.318% (1,791/563,200 compared
pixels), above the 0.001 threshold. Investigated pixel-by-pixel rather
than waved through: a diff heatmap plus 4x crops at the differing
clusters show zero differences anywhere in the retained UI, terrain,
scenery, or static meshes - every differing pixel sits on continuously-
animated ambient content (flying-insect sprites over the swamp, foliage
sparkle/dew glints) whose exact phase depends on elapsed wall-clock
time, the same category the gate's own sky-masking rationale already
documents and the campaign doc's coverage table explicitly excludes
("Not covered - particles"). Confirming evidence: two same-commit
captures at HEAD compare clean against each other (0.0025%), and two
same-commit captures at the parent compare clean against each other
(0.0044%) - only base-vs-head is consistently elevated, which is what
frame-pacing drift from genuinely new per-frame RHI work (BeginFrame,
ring resets, the render-state reset above) would produce against a
fixed wall-clock capture deadline, not a rendering defect. Recommend a
quick user visual check of this capture pair alongside the automated
result, matching how V2c's particle work was already handled in this
campaign (flagged for user visual confirmation rather than blocked on
an automated gate that cannot cover animated content).
Co-Authored-By: Claude Fable 5 <noreply@anthropic.com>
Continues the V2a mesh-path conversion onto TerrainModernRenderer: its two
per-pass bindless texture handles (the terrain atlas and the alpha-mask
atlas) now travel as table indices instead of raw 64-bit
ARB_bindless_texture handles, with zero pixel change.
Terrain differs structurally from the mesh path: it has no per-batch SSBO at
all, just two handles set once per draw as plain uniforms
(terrain_modern.frag's uTerrainHandle/uAlphaHandle, reconstructed via the
sampler2DArray(handle) macros uTerrain/uAlpha). So instead of a BatchData
struct field, the two uniforms became uTextureIndexA/uTextureIndexB - named
to match the pinned GpuPushConstants.TextureIndexA/B fields (campaign doc
section 3.4) so V4d's eventual move to push constants is a rename, not a
redesign. There is no push-constant plumbing yet, so these stay plain
uniforms for now, set via ProgramUniform1 instead of ProgramUniform2.
TerrainModernRenderer owns its own GlBindlessHandleTable and binding=9 SSBO
(the same GL-only handle-table emulation V2a introduced), independent of
WbDrawDispatcher's and EnvCellRenderer's - nothing requires index agreement
between renderers, and terrain only ever registers two handles per draw
(the atlas's terrain/alpha textures), so its table is dirty only once, on
first draw. Unlike WbDrawDispatcher/EnvCellRenderer, TerrainModernRenderer
already eagerly creates its other GL resources in the constructor with a
ResourceCleanupGroup rollback, so the texture-table SSBO is created there
too rather than lazily.
TerrainAtlas needed no change: GetBindlessHandles() keeps returning the raw
(ulong terrain, ulong alpha) pair unchanged - the table lookup is entirely a
TerrainModernRenderer-side concern, added at the one draw-call site that
already converts those handles into shader state.
Shader-side: terrain_modern.frag's uTerrain/uAlpha macros now expand through
common.glsl's ACDREAM_TEXTURE_HANDLE(idx) lookup; both terrain_modern.vert
and .frag opted into the common.glsl preamble (Shader's
includeCommonPreamble, introduced at V2a) so their SceneLighting UBO
declarations could also pick up the ACDREAM_UBO_SET scaffolding macro -
terrain_modern.vert doesn't touch the texture table itself, but sharing the
same preamble across both stages of a technique is simpler to reason about
than deciding per-stage.
Gate: dotnet build -c Release green, dotnet test tests/AcDream.App.Tests
-c Release green (3843 passed / 3 skipped, matching V2a), and
tools/run-offline-pixel-gate.ps1 passed against the V2a commit's build with
a 2.49e-05 differing-pixel fraction - within the documented ~33x same-commit
noise margin. No divergence-register row: this introduces no retail
behavior deviation.
Co-Authored-By: Claude Fable 5 <noreply@anthropic.com>
Move Region/environment, mandatory modern rendering, terrain, WB, texture, and sampler construction behind the typed Phase-4 composition boundary. Give every fallible GL constructor prefix retryable ownership so partial startup failure cannot leak or replay resource deletion while preserving the accepted render path and DAT inputs.
Co-authored-by: Codex <codex@openai.com>
Resolve DAT-authored particle ranges from the hardware GfxObj, apply retail distance and completed-cell visibility gates, and preserve the exact finite/infinite off-view update semantics. This removes dense-world simulation work without shortening terrain, entity, fog, or streaming distance.
Publish doorway-clipped outdoor cells through a focused frame controller, retain effect cell identity for outdoor statics, reject hidden emitters before particle-slot scans, and offer an explicit opt-in Extended particle range.
Release build succeeds and all 5,857 tests pass with five intentional skips. Retail-conformance, architecture, and adversarial review cycles are clean; connected Aerlinthe visual/performance gate pending.
Co-authored-by: OpenAI Codex <codex@openai.com>
Carry TerrainTex.TexTiling through the terrain atlas and upload a layer-indexed table to the modern bindless shader so base, overlay, and road textures repeat at retail scale. Keep alpha masks cell-scaled and preserve retail's verified source-level-zero high-detail selection.
Add the named-retail pseudocode, WorldBuilder/ACE/ACME cross-reference, adapter conformance tests, and inventory documentation so a future renderer migration keeps the contract.
Co-Authored-By: Codex <noreply@openai.com>
The cellar-ascent grass window was the UNDERSIDE of the z~94 grade
sheet. Retail terrain is single-sided: ACRender::landPolysDraw
(0x006b7040) draws each land triangle ONLY when the camera is on the
POSITIVE (upper) side of its plane (Plane::which_side2 vs
Render::FrameCurrent, zFightTerrainAdjust bias) - a below-grade eye
gets NO terrain, so retail shows sky through the cellar door.
We inherited WB's frame-global cull DISABLE (WB GameScene.cs:841 - an
editor camera goes underground by design) and TerrainModernRenderer.Draw
set no cull state of its own -> terrain rasterized both sides. From a
below-grade eye every aperture sight-ray RISES, so the only 'terrain'
it can see is the grade sheet's underside - which painted the exit-door
aperture (the landscape slice's 2D NDC clip planes (nx,ny,0,dw) have no
depth axis and cannot exclude between-eye-and-portal geometry) and slid
off the door exactly as the eye crossed grade. Membership/viewer was
exonerated by the harness in the previous commit.
Fix: TerrainModernRenderer.Draw owns its cull state (the 7th
self-contained-GL-state instance): Enable(CullFace) + CullFace(Back) +
FrontFace(Ccw), set -> draw -> restore the frame-global CW + cull-off
baseline. GL backface culling evaluates retail's per-triangle eye-side
predicate at rasterization; no shader change.
Pins:
- LandblockMeshTests.Build_AllTriangles_WindCounterClockwiseInWorldXY:
every emitted triangle CCW in world XY across both FSplitNESW split
directions - the winding invariant culling depends on.
- TerrainCullOrientationTests: under the production camera convention
(LookAt up=+Z, Numerics perspective) an up-facing triangle winds CCW
in window space from above (kept) and CW from below (culled) - guards
FrontFace inversion, which would blank terrain from above.
Oracle note: retail's through-portal clip has NO portal-face near plane
(PView::GetClip / Render::set_view install edge planes only); nearer-
than-portal exclusion comes from the eye-side cull + cell-level
admission. No register row: this PORTS the retail mechanism, retiring
an undocumented WB-heritage deviation.
Gate pending: cellar climb (grass window gone) + outdoor sanity glance
(terrain intact from above).
Suites: App 263+1skip / Core 1443+2skip / UI 420 / Net 294.
Co-Authored-By: Claude Fable 5 <noreply@anthropic.com>
T4.4: annotate EnvCellRenderer.RegisterCell to document that ceilings are present by
construction. PrepareCellStructMeshData iterates ALL CellStruct.Polygons (floor + walls +
ceiling) with no surface filter; retail PView::DrawCells draws the same closed-box
drawing_bsp. No ceiling filtering confirmed.
T4.2: annotate TerrainModernRenderer.Draw to document that terrain projects from the
passed-in ICamera (uView + uProjection derive from the same camera as all other
renderers). No separate landscape viewpoint exists that could desync from the eye.
T4.5, T5.1, T5.2: pure verification — no code changes (see report).
Co-Authored-By: Claude Opus 4.8 (1M context) <noreply@anthropic.com>
Adds the GPU mechanism to clip drawing to a per-cell screen-space convex
region via gl_ClipDistance, consumed by the mesh + terrain vertex shaders.
This is the MECHANISM only — every instance defaults to slot 0 (no-clip /
pass-all) and terrain to count 0, so the running game renders IDENTICALLY to
pre-U.3 (verified: offline launch compiles both shaders and reaches steady
state; no GL errors). U.4 populates real clip data from portal visibility.
Binding contract (define once, both sides obey):
- mesh_modern.vert: SSBO binding=2 CellClip[] (shared per-frame regions, slot 0
reserved no-clip) + SSBO binding=3 uint[] per-instance slot, indexed by the
IDENTICAL gl_BaseInstanceARB+gl_InstanceID used for binding=0. binding=0/1
untouched.
- terrain_modern.vert: UBO binding=2 TerrainClip { int count; vec4 planes[8]; }
for the single OutsideView region (UBO namespace; SceneLighting is UBO
binding=1, so binding=2 is free and does not collide with the mesh SSBO
binding=2). count 0 = ungated.
- Both redeclare out gl_PerVertex { vec4 gl_Position; float gl_ClipDistance[8]; }
and set unused planes (i >= count) to +1.0 so they pass everything.
CellClip std430 layout (144 bytes/slot): count@0, 3 pad uints@4/8/12,
planes[8]@16 (vec4 stride 16). Terrain UBO std140: count@0 (padded to 16),
planes[8]@16 → 144 bytes. Verified by ClipFrameLayoutTests (8 new tests).
Pieces:
- ClipFrame: per-frame container + uploader for the SHARED clip data (binding=2
SSBO + terrain UBO). NoClip() = slot 0 + terrain count 0. AppendSlot /
SetTerrainClip pack std430/std140 bytes for U.4. UploadShared binds both.
- WbDrawDispatcher + EnvCellRenderer: each owns its binding=3 zero buffer
(all-zeros sized to its instance count → slot 0), re-binds binding=2 from the
shared ClipFrame id (or an internal no-clip fallback if unwired) before MDI.
gl_ClipDistance is per-vertex, so the single glMultiDrawElementsIndirect per
group is preserved — no draw splitting.
- TerrainModernRenderer: binds the terrain clip UBO (shared or no-clip fallback)
before its draw.
- GameWindow: glEnable(GL_CLIP_DISTANCE0..7) once at init (unused planes pass-all
so always-on avoids per-draw thrash); per frame builds ClipFrame.NoClip(),
UploadShared, and hands the buffer ids to the three renderers (tiny diff; U.4
swaps NoClip() for the real portal-visibility frame).
Gate: dotnet build green; App suite 134/134; offline launch confirms both
shaders compile + link with no GL errors.
Co-Authored-By: Claude Opus 4.8 (1M context) <noreply@anthropic.com>
GameWindow.OnLoad resolves QualitySettings.From(_persistedDisplay.Quality)
+ WithEnvOverrides() immediately after LoadAndApplyPersistedSettings, stores
result in _resolvedQuality field. All six quality dimensions applied:
- NearRadius / FarRadius: replace old T16 env-var-only block; preset drives
the radii, legacy ACDREAM_STREAM_RADIUS override still honoured.
- MsaaSamples: WindowOptions.Samples reads from startup quality resolution
in Run() (pre-window-create read from SettingsStore). MSAA cannot change
at runtime; ReapplyQualityPreset logs a restart-required warning if the
new preset would change it.
- AnisotropicLevel: TerrainAtlas.SetAnisotropic() called after Build() and
again in ReapplyQualityPreset. Temporarily removes bindless residency
before the GL TexParameter call, re-makes resident after.
- AlphaToCoverage: WbDrawDispatcher.AlphaToCoverage property gates the
glEnable/glDisable(SampleAlphaToCoverage) pair around the opaque pass.
- MaxCompletionsPerFrame: set on StreamingController after construction
and after each mid-session restart.
ReapplyQualityPreset(QualityPreset) method handles mid-session changes
(Settings panel Quality dropdown Save): rebuilds streamer + controller for
radius changes, toggles A2C and aniso immediately, logs MSAA restart caveat.
onSaveDisplay callback updated to call ReapplyQualityPreset when Quality
field changes.
TerrainModernRenderer.Atlas property added to expose the atlas for
mid-session aniso updates.
991 tests passing, 8 pre-existing failures unchanged.
Co-Authored-By: Claude Opus 4.7 (1M context) <noreply@anthropic.com>
T13 routes worker-built meshes from LandblockStreamResult.Loaded.MeshData
into the renderer. AddLandblockWithMesh accepts a prebuilt mesh + origin
and delegates to the existing AddLandblock(uint, LandblockMeshData, Vector3)
so both paths share one upload path (Approach B -- AddLandblock already
takes a prebuilt mesh; no inline build to extract).
GameWindow's T16 lambda captures liveCenterX/Y and passes the derived
origin; the renderer stays origin-agnostic.
Co-Authored-By: Claude Opus 4.7 (1M context) <noreply@anthropic.com>
Symptom: terrain renders pure black in modern path (legacy renderer
correct). Diagnostic at TerrainModernRenderer.Draw showed:
glProgramUniformHandle(prog=4, loc=5, handle=0x100251xxx) → GL_INVALID_OPERATION (0x0502)
on both terrain and alpha sampler uniforms.
Root cause: the `uniform sampler2DArray` + glProgramUniformHandleARB
combination is rejected by the NVIDIA Windows driver in this configuration.
The handle is valid and resident; the uniform location is valid; the
program is valid; but the driver refuses to bind a 64-bit handle to a
sampler uniform via the program-uniform path.
Fix: switch to N.5's mesh_modern pattern — pass each 64-bit handle as a
`uniform uvec2` (low + high 32-bit halves) and construct the sampler at
the use site via the GLSL `sampler2DArray(handle)` constructor. This
form is what ARB_bindless_texture documents as universally supported and
is what N.5 already uses successfully.
Files:
- terrain_modern.frag: replace `uniform sampler2DArray uTerrain/uAlpha`
with `uniform uvec2 uTerrainHandle/uAlphaHandle` + `#define`s
- TerrainModernRenderer.cs: cache uvec2 uniform locations; set via
`glProgramUniform2(program, loc, low32, high32)` per frame
- BindlessSupport.cs: remove now-unused `SetSamplerHandleUniform`,
leave a comment noting why the helper was retired
- GameWindow.cs: also strip the temporary [TERRAIN-DBG] cursor-wrap
print added during the perf-baseline investigation
Build green; 114/114 tests in N.5+N.5b filter still pass; user-verified
terrain renders correctly in modern path post-fix. Captured fresh perf
baseline:
- Legacy: cpu_us median 1.5 / p95 3.0 (1 chunk = 1 glDrawElements)
- Modern: cpu_us median 6.4-7.0 / p95 9-14 (51 visible LBs, 1 MDI call)
Modern is ~4× slower on CPU at radius=5 because the chunked legacy path
already collapsed the scene to one draw call. The architectural wins
(zero glBindTexture/frame; constant-cost dispatch as A.5 raises radius)
will be documented in T10's perf baseline doc; the spec's
"≥10% lower CPU" acceptance criterion is invalid at radius=5 and needs
revision.
Co-Authored-By: Claude Opus 4.7 (1M context) <noreply@anthropic.com>
Code review (Important #1): AddLandblock validated Vertices.Length but
not Indices.Length. The indices loop indexes meshData.Indices[0..383]
unconditionally — out-of-range input would throw IndexOutOfRangeException
instead of the clearer ArgumentException the vertex check raises. Today
LandblockMesh.Build always produces 384/384, so this is defensive
forward-compat for future mesh sources.
Code review (Important #2): The shader (terrain_modern.vert:gl_VertexID
% 6) only correctly picks the cell-corner index because we bake
`slot * VertsPerLandblock` into indices and 384 is a multiple of 6.
That invariant is now documented in a comment near the constant — anyone
changing it must audit the shader.
Build green: 0 errors / 0 warnings.
Co-Authored-By: Claude Opus 4.7 (1M context) <noreply@anthropic.com>
The new terrain dispatcher. Single global VBO/EBO with a slot
allocator (one slot per landblock, 384 verts × 40 bytes per slot).
Per-frame: build DEIC array from visible slots, upload, dispatch
via glMultiDrawElementsIndirect. Atlas textures bound via bindless
handles set per-frame as sampler uniforms.
Total ~6-8 GL calls per frame for terrain regardless of visible
landblock count (vs today's per-LB binds at radius=2 → ~25 calls,
radius=5 → ~121 calls).
API mirrors TerrainChunkRenderer so GameWindow integration in T8 is
a drop-in field+ctor swap.
Co-Authored-By: Claude Opus 4.7 (1M context) <noreply@anthropic.com>